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Design of a dynamic control system for standalone solar-hydrogen power generation

机译:独立太阳能 - 氢发电动态控制系统的设计

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Solar-hydrogen systems employing a photovoltaic array and storage of surplus energy in the form of hydrogen are an attractive zero-emission and low-maintenance solution for remote area and other standalone power supplies to replace diesel and PV- battery systems. A number of experimental and demonstration solar-hydrogen systems have been constructed and tested, but little work has been done to date on an overall control unit for such systems. The present paper thus focuses on the design of a control unit for a solar-hydrogen system with hydrogen generation via a proton exchange membrane (PEM) electrolyser, compressed gas or metal-hydride hydrogen storage, and a PEM fuel cell. Particular emphasis is placed on the design of an integrated maximum power point tracker and load splitter that can dynamically supply power to meet the load and divert any surplus to operate the PEM electrolyser and produce hydrogen for storage. Two alternative algorithms for the execution of the load splitting function are outlined. Measurements of the typical variation of solar radiation over a very short time scale, together with typical household load variations, are used to suggest an appropriate unit time interval within which the system operates at selected optimal settings. The main components of a planned experimental program to measure the performance of the control unit for a small standalone solar PV-hydrogen system are presented.
机译:采用光伏阵列的太阳能氢气系统和氢气形式的剩余能量储存是偏远地区和其他独立电源的吸引力零排放和低维护解决方案,以更换柴油和PV电池系统。已经构建和测试了许多实验和演示太阳能 - 氢气系统,但在这种系统的整个控制单元上迄今为止已经完成了少的工作。因此,本文专注于通过质子交换膜(PEM)电解槽,压缩气体或金属 - 氢化物储氢,以及PEM燃料电池的太阳能 - 氢系统的控制单元的设计。特别强调在集成的最大功率点跟踪器和装载分配器的设计上,可以动态地供电以满足负载,并转移任何剩余以操作PEM电解器并产生氢气以进行储存。概述了用于执行负载分离功能的两个替代算法。在非常短的时间尺度上,与典型的家庭负载变化一起测量太阳辐射的典型变化,用于建议系统在所选择的最佳设置下操作的适当单位时间间隔。介绍了测量小型独立太阳能PV-氢气系统的控制单元性能的计划实验程序的主要组成部分。

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